Faculty of Chemistry, Center for Nanointegration Duisburg-Essen (CENIDE) and Centre for Water and Environmental Research (ZWU), University of Duisburg-Essen, Essen, Germany.
Center for Soft Nanoscience, University of Münster, Münster, Germany.
Photochem Photobiol Sci. 2022 Aug;21(8):1387-1398. doi: 10.1007/s43630-022-00229-9. Epub 2022 May 5.
The ongoing effort to eradicate pathogenic bacteria and viruses is a major endeavor that requires development of new and innovative materials. Materials based on photodynamic action represent an emerging and attractive area of research, and therefore, a broad understanding of chemical design principles is required. In the present study, we investigated the antibacterial and antiviral activities of five different nanofibrous membranes composed of poly(vinyl alcohol) or poly(vinyl alcohol)-chitosan mixture cross-linked through silicon(IV)phthalocyanine derivative with the aim to identify the role of the carrier polymer and photosensitizers concentration on its efficacy. A straightforward cross-linking process was adopted to create a water-stable material with an almost uniform distribution of the fiber structure, as revealed by scanning electron microscopy. The results of the antimicrobial studies showed that the increase in the amount of chitosan in the polymer mixture, rather than the increase in the photosensitizer concentration, enhanced the activity of the material. Due to their visible light-triggered antimicrobial activity, the resulting materials provide valuable opportunities for both topical antimicrobial photodynamic therapy and the area of environmental remediation.
目前的研究旨在消灭病原菌和病毒,这是一项需要开发新材料和创新材料的重大任务。基于光动力作用的材料代表了一个新兴且有吸引力的研究领域,因此需要广泛了解化学设计原则。在本研究中,我们研究了由聚(乙烯醇)或聚(乙烯醇)-壳聚糖混合物组成的五种不同纳米纤维膜的抗菌和抗病毒活性,这些纤维膜通过硅(IV)酞菁衍生物交联,目的是确定载体聚合物和光敏剂浓度对其功效的作用。采用简单的交联过程来制备一种具有几乎均匀纤维结构分布的水稳定材料,这一点通过扫描电子显微镜得到了揭示。抗菌研究的结果表明,聚合物混合物中壳聚糖含量的增加,而不是光敏剂浓度的增加,增强了材料的活性。由于其可见光触发的抗菌活性,所得到的材料为局部抗菌光动力疗法和环境修复领域提供了有价值的机会。